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Estimating Compton scatter distributions with a regressional neural network for use in a real-time staff dose management system for fluoroscopic procedures

机译:用回归神经网络估计康普顿分散分布,用于实时员工剂量管理系统,用于荧光透视程序

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Staff-dose management in fluoroscopic procedures is a continuing concern due to insufficient awareness of radiation dose levels. To maintain dose as low as reasonably achievable (ALARA), we have developed a software system capable of monitoring the procedure room scattered radiation and the dose to staff members in real-time during fluoroscopic procedures. The scattered-radiation display system (SDS) acquires imaging-system signal inputs to update technique and geometric parameters used to provide a color-coded mapping of room scatter. We have calculated a discrete look-up-table (LUT) of scatter distributions using Monte-Carlo (MC) software and developed an interpolation technique for the multiple parameters known to alter the spatial shape of the distribution. However, the file size for the LUT's can be large (~2GB), leading to long SDS installation times in the clinic. Instead, this work investigated the speed and accuracy of a regressional neural network (RNN) that we developed for predicting the scatter distribution from imaging-system inputs without the need for the LUT and interpolation. This method greatly reduces installation time while maintaining real-time performance. Results using error maps derived from the structural similarity index indicate high visual accuracy of predicted matrices when compared to the MC-calculated distributions. Dose error is also acceptable with a matrix element-averaged percent error of 31%. This dose-monitoring system for staff members can lead to improved radiation safety due to immediate visual feedback of high-dose regions in the room during the procedure as well as enhanced reporting of individual doses post-procedure.
机译:由于辐射剂量水平不足,荧光透视手术中的员工剂量管理是一种持续的关注。为了使剂量保持低于合理可取的(ALARA),我们开发了一种能够在荧光透视程序期间实时监测手术室散射辐射的软件系统,并在荧光透视手术期间实时地对工作人员。散射 - 辐射显示系统(SDS)获取成像系统信号输入以更新技术和用于提供房间散射的颜色编码映射的几何参数。我们已经计算了使用Monte-Carlo(MC)软件的离散查找表(LUT),并开发了用于改变分布空间形状的多个参数的插值技术。但是,LUT的文件大小可以很大(〜2GB),导致诊所的长SDS安装时间。相反,这项工作研究了我们开发用于预测从成像系统输入的分散分布而不需要LUT和插值的速度和准确性。此方法大大减少了安装时间,同时保持实时性能。与结构相似索引导出的错误映射的结果表示与MC计算的分布相比预测矩阵的高视觉准确性。剂量误差也可接受,矩阵元素平均误差为31%。由于在程序期间,由于房间中的高剂量区域的直接视觉反馈,这适用于工作人员的这种剂量监测系统可以提高辐射安全性,并且在程序后个体剂量的报告。

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